4.5 Article

Pseudogene PTENP1 sponges miR-214 to regulate the expression of PTEN to modulate osteoclast differentiation and attenuate osteoporosis

期刊

CYTOTHERAPY
卷 22, 期 8, 页码 412-423

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.jcyt.2020.04.090

关键词

MiR-214; Osteoporosis; Osteoclast differentiation; Pseudogene PTENP1; PTEN

资金

  1. Young Science Foundation of the National Natural Science Foundation of China [81902308]
  2. General Project of National Natural Science Foundation of China [81974360]
  3. Natural Science Foundation of Hunan Province [2020JJ5924]

向作者/读者索取更多资源

Background aims: Osteoporosis (OP) is a common bone metabolic disease with a high incidence. Our study aimed to explore the pseudogene PTENP1/miR-214/PTEN axis to modulate the osteoclast differentiation in osteoporosis. Methods: Patients with osteoporosis were recruited in our study, and RANKL-induced osteoclast differentiation and ovariectomy-induced osteoporosis mouse model were established in vitro and in vivo, respectively. Results: Pseudogene PTENP1 and PTEN were significantly down-regulated and miR-214 was up-regulated in osteoporosis patients. In addition, overexpression of PTENP1 or silence of miR-214 inhibited the expression levels of osteoclast specific markers and osteoclast differentiation induced by RANKL. Overexpression of PTENP1 or silence of miR-214 also inhibited the levels of phosphorylation of PI3K and AKT, p65 nuclear translocation, I kappa B alpha degradation and the expression level of NFATc1. AlsoSilence of PTENP1 or overexpression of miR-214 induced the osteoclast differentiation under normal physiological condition. Pseudogene PTENP1 sponged miR-214 to regulate the expression of PTEN. Conclusions: In an ovariectomy-induced osteoporosis mouse model, obvious pathological changes in bone tissues were found, and bone marrow mononuclear cells in this group were more likely to differentiate into osteoclasts. Therefore, pseudogene PTENP1 sponged miR-214 to regulate the expression of PTEN to inhibit osteoclast differentiation and attenuate osteoporosis by suppressing the PI3K/AKT/NF-kappa B signaling pathway. (C) 2020 International Society for Cell and Gene Therapy. Published by Elsevier Inc. All rights reserved.

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